Self-Defense-Technologies for Automated Teller Machines

H. Sako, T. Watanabe, H. Nagayoshi, T. Kagehiro
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引用次数: 9

Abstract

Automated teller machines obviously require functions for protecting themselves from crimes, because they must handle cash. This paper discusses self-defense-technologies based on image processing and recognition to realize such functions in the machines. The technologies include (i) banknote validation for preventing machines from receiving counterfeit banknotes, (ii) form & character recognition for preventing machines from accepting remittance forms with out of due dates, (Hi) person identification to stop machines from transacting with non-customers, and (iv) object recognition to guard machines against foreign objects such as spy cams that may be attached to them. After describing the outline of the system, technologies (i), (ii), and (Hi) are introduced. This paper concentrates on the object recognition technology for detecting foreign objects. Although the technology is based on conventional background- subtraction, we developed special noise reduction techniques to make it suitable for actual machines. The object recognition technology was evaluated in experiments using real 160-hour image video composed of about 8.6 times 10 frames in total, and the false-alarm rate and false-negative rate were 0.7% and 0%, respectively.
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自动柜员机的自卫技术
自动柜员机显然需要防止犯罪的功能,因为它们必须处理现金。本文讨论了基于图像处理和识别的自卫技术,以在机器上实现这些功能。这些技术包括(i)纸币验证,防止机器接收假钞;(ii)形式和字符识别,防止机器接受过期的汇款表格;(Hi)人员识别,防止机器与非客户进行交易;(iv)物体识别,防止机器免受可能附着在机器上的间谍摄像头等异物的侵害。在描述了系统的概要之后,介绍了技术(i)、(ii)和(Hi)。本文主要研究用于检测异物的物体识别技术。虽然该技术是基于传统的背景减法,但我们开发了特殊的降噪技术,使其适用于实际机器。在实验中,使用共8.6 × 10帧的160小时真实图像视频对目标识别技术进行了评价,其误报率和误报率分别为0.7%和0%。
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